WO2019196805A1 - 测量间隔的配置方法及装置、存储介质、电子装置 - Google Patents

测量间隔的配置方法及装置、存储介质、电子装置 Download PDF

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Publication number
WO2019196805A1
WO2019196805A1 PCT/CN2019/081790 CN2019081790W WO2019196805A1 WO 2019196805 A1 WO2019196805 A1 WO 2019196805A1 CN 2019081790 W CN2019081790 W CN 2019081790W WO 2019196805 A1 WO2019196805 A1 WO 2019196805A1
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Prior art keywords
network element
interval
configuration
node
message
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English (en)
French (fr)
Inventor
韩济任
刘静
高音
黄河
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ZTE Corp
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ZTE Corp
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Priority to ES19785310T priority Critical patent/ES3058585T3/es
Priority to KR1020207032460A priority patent/KR102530745B1/ko
Priority to JP2020555395A priority patent/JP7227982B2/ja
Priority to EP19785310.4A priority patent/EP3780710B1/en
Publication of WO2019196805A1 publication Critical patent/WO2019196805A1/zh
Priority to US17/066,871 priority patent/US11974239B2/en
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0078Timing of allocation
    • H04L5/0082Timing of allocation at predetermined intervals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • H04W36/0088Scheduling hand-off measurements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signalling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/02Traffic management, e.g. flow control or congestion control
    • H04W28/08Load balancing or load distribution
    • H04W28/086Load balancing or load distribution among access entities
    • H04W28/0861Load balancing or load distribution among access entities between base stations
    • H04W28/0864Load balancing or load distribution among access entities between base stations of different hierarchy levels, e.g. Master Evolved Node B [MeNB] or Secondary Evolved node B [SeNB]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0055Transmission or use of information for re-establishing the radio link
    • H04W36/0069Transmission or use of information for re-establishing the radio link in case of dual connectivity, e.g. decoupled uplink/downlink
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/27Control channels or signalling for resource management between access points
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/15Setup of multiple wireless link connections
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • HELECTRICITY
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    • H04WWIRELESS COMMUNICATION NETWORKS
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    • H04W88/08Access point devices
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/08Access point devices
    • H04W88/085Access point devices with remote components
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/12Access point controller devices
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/02Inter-networking arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices
    • H04W92/10Interfaces between hierarchically different network devices between terminal device and access point, i.e. wireless air interface
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices
    • H04W92/12Interfaces between hierarchically different network devices between access points and access point controllers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/16Interfaces between hierarchically similar devices
    • H04W92/20Interfaces between hierarchically similar devices between access points

Definitions

  • the present disclosure relates to the field of communications, and in particular to a method and apparatus for configuring measurement intervals, a storage medium, and an electronic device.
  • the 5G network architecture is innovative and flexible in networking.
  • the base station on the radio access network side is separated into a centralized processing unit (Centralized Unit, CU for short) and a distributed processing network element. (Distributed Unit, referred to as DU) two functional entities.
  • a centralized processing unit Centralized Unit, CU for short
  • DU distributed Processing network element
  • the delay-insensitive network function is placed in the centralized processing network element CU
  • the delay-sensitive network function is placed in the distributed processing network element DU, which saves a large number of core networks.
  • the signaling overhead on the other hand, also reduces the delay of handover and can enhance the mobility of the NR system.
  • the CU and the DU are transmitted and connected through the F1 interface.
  • Dual connectivity in 5G networks includes:
  • the primary node base station is an eNB
  • the secondary node base station is a gNB, which is connected to an LTE core network EPC, that is, E-UTRAN, NR Dual Connectivity (E-UTRAN, NR Dual Connectivity, referred to as EN-DC);
  • the primary node base station is an eNB
  • the secondary node base station is a gNB, which is connected to the NR core network 5GC, that is, E-UTRAN, NR dual connectivity (NG-RAN E-UTRA, NR Dual Connectivity, abbreviated as NGEN-DC);
  • the primary node is a gNB
  • the secondary node is an eNB, which is connected to the NR core network 5GC, that is, NR, E-UTRAN Dual Connectivity (NE-DC);
  • Both the primary node and the secondary base station are gNBs, that is, NR, NR Dual Connectivity (NN-DC).
  • the UE In the LTE (Long Term Evolution) system of the related art, if the UE has only one receiver, the signal can only be received at one frequency point at the same time. Before performing the system switching of different frequency, the system measurement of the different frequency is first performed. After the inter-frequency or different-system measurement is triggered, the eNodeB sends a measurement interval related configuration, and the UE starts the measurement interval according to the configuration instruction of the eNodeB.
  • LTE Long Term Evolution
  • the measurement interval-related coordination process and the detailed configuration process have not been determined, such as the decision of the relevant parameters of the interval mode, and the relationship between the primary node and the secondary node.
  • gNB-CU first network element
  • gNB-DU second network element
  • Embodiments of the present disclosure provide a method and apparatus for configuring measurement intervals, a storage medium, and an electronic device.
  • a method for configuring a measurement interval including: a first network element determining frequency point information of a measurement target; the first network element passing the frequency point information through a first interface signaling Notifying the second network element; wherein the first network element and the second network element are set in the same node.
  • a method for configuring a measurement interval including: calculating, by a first network element, one or more sets of measurement interval mode configurations according to physical resource configuration information on one or more second network elements The first network element sends the interval mode configuration information to the corresponding second network element, where the first network element corresponds to one or more of the second network elements, and the first network element And the one or more second network elements are disposed at the same node.
  • a method for configuring a measurement interval including: a second network element configuration interval mode; the second network element notifying the first network element of the interval mode; the first network element The configured interval mode can be notified to other second network elements.
  • the first network element corresponds to one or more of the second network elements, and the first network element and the plurality of the second network elements are disposed at the same node.
  • a method for configuring a measurement interval including: a user equipment UE receives an air interface reconfiguration message; and in a case where the air interface reconfiguration information causes a change in an interval requirement of the UE, When the UE replies to the RRC reconfiguration complete message, the UE in the radio resource control RRC message of the primary node notifies the primary node of the change of the interval requirement on the network side; wherein the UE simultaneously connects the primary node and the secondary node
  • the primary node is an eNB or a gNB, and the secondary node is a gNB or an eNB.
  • a method for configuring a measurement interval including: the secondary node requests the primary node to perform interval configuration update or interval release by carrying an indication in the second interface message; and the secondary node receives the primary node.
  • the second interface message is sent, where the second interface message carries information for notifying the secondary node side to perform interval configuration update, maintenance or release; wherein the primary node and the secondary node that the UE simultaneously connects.
  • a method for configuring a measurement interval including: a primary node acquiring measurement frequency point configuration indication information of a secondary node; and determining, by the primary node, an interval mode by using the measurement frequency point configuration indication information An optional set; wherein the UE simultaneously connects the primary node and the secondary node.
  • a method for configuring a measurement interval including: in a 4/5G dual connectivity scenario, a primary node and a secondary node exchange a measurement interval configuration capability on a base station side through a third or second interface; Or, in the NN-DC scenario, the primary node and the secondary node exchange the measurement interval configuration capability of the base station side through the second interface.
  • a configuration apparatus for measuring a measurement interval includes: a first network element and a second network element, where the first network element determines frequency point information of a measurement target.
  • the first network element notifies the frequency point information to the second network element by using a first interface signaling.
  • a configuration apparatus for measuring a measurement interval which is applied to a base station, including: a first network element and one or more second network elements, wherein the first network element is based on one or more The physical resource configuration information on the second network element calculates one or more sets of interval mode configuration information; the first network element sends the interval mode configuration information to the corresponding second network element; wherein, the first The network element corresponds to the one or more second network elements.
  • a configuration apparatus for measuring a measurement interval is provided, which is applied to a base station, including: a first network element and one or more second network elements, wherein the second network element is configured with an interval mode.
  • the second network element notifies the first network element of the interval mode.
  • a configuration apparatus for measuring a measurement interval is provided, which is applied to a user equipment UE, including: a receiving module, configured to receive an air interface reconfiguration message; and a notification module configured to reconfigure information in the air interface
  • the cell in the radio resource control RRC message of the master node notifies the network side of the change in the interval requirement; wherein, The UE is connected to the primary node and the secondary node at the same time, and the primary node is an eNB or a gNB, and the secondary node is a gNB or an eNB.
  • a configuration apparatus for measuring a measurement interval which is applied to a secondary node, and includes: a requesting module, configured to request the primary node to perform interval configuration update or interval by carrying an indication in the second interface message. Or the second node message is sent by the secondary node, where the second interface message carries an indication for notifying the secondary node to perform interval configuration update, maintenance, or release; The master node and the secondary node are described.
  • a configuration apparatus which is applied to a master node, and includes: an obtaining module, configured to acquire indication information of the secondary node; and a determining module, configured to determine the interval by using the indication information An optional set of modes; wherein the UE simultaneously connects the primary node and the secondary node.
  • a configuration apparatus for measuring a measurement interval is provided, which is applied to a primary node, including: a first interaction module, configured to be in a new wireless EN-DC scenario of an evolved global terrestrial radio access network, and The secondary node exchanges the interval configuration capability of the base station side through the third interface; or the second interaction module is configured to exchange the interval configuration capability of the base station side with the secondary node in the new wireless new wireless NN-DC scenario.
  • a storage medium having stored therein a computer program, wherein the computer program is configured to perform the steps of any one of the method embodiments described above at runtime.
  • an electronic device comprising a memory and a processor, wherein the memory stores a computer program, the processor being configured to execute the computer program to perform any of the above The steps in the method embodiments.
  • FIG. 1 is a network architecture diagram of an embodiment of the present disclosure
  • FIG. 2 is a flowchart of a method of configuring a measurement interval in accordance with an embodiment of the present disclosure
  • FIG. 3 is a structural block diagram of a configuration apparatus for measuring intervals according to an embodiment of the present disclosure
  • FIG. 6 is a flowchart of configuring a physical resource on a DU by using a message request by a CU in this embodiment
  • FIG. 7 is a flowchart of a physical resource configuration for actively reporting a DU by the embodiment.
  • FIG. 8 is a schematic diagram of a CU according to the embodiment sending a gap configuration according to different interval types
  • FIG. 9 is a flowchart of a method for configuring an interval mode in an NR multi-connection architecture according to the embodiment.
  • FIG. 10 is a flowchart of a method for the UE to notify the network side of the change in the interval requirement in the embodiment
  • FIG. 11 is a flow chart of configuring a secondary node request acquisition interval according to the embodiment.
  • FIG. 12 is a flowchart of a configuration of a secondary node requesting deletion interval according to the embodiment.
  • FIG. 13 is a flowchart of determining, by the master node according to the indication, an optional interval mode set according to the indication;
  • FIG. 14 is a flow chart of the interaction between the primary node and the secondary node in the interval configuration capability of the primary node and the secondary node according to the embodiment;
  • FIG. 15 is a flow chart of the interaction between the primary node and the secondary node in the embodiment for performing interval configuration capability by using UE-specific signaling.
  • FIG. 1 is a network architecture diagram of an embodiment of the present disclosure.
  • the network architecture includes: a primary node, a secondary node, and a UE, where the primary The node and the secondary node can be understood as the base stations on the network side (the primary base station and the secondary base station, respectively), and the base station includes the first network element DU and the second network element CU, and the DU and the CU adopt a separate architecture.
  • the first interface is an F1 interface
  • the second interface is an Xn interface
  • the third interface is an X2 interface.
  • FIG. 2 is a flowchart of a method for configuring a measurement interval according to an embodiment of the present disclosure. As shown in FIG. 2, the process includes the following steps. :
  • Step S202 the first network element determines frequency point information of the measurement target
  • Step S204 the first network element notifies the frequency point information to the second network element by using the F1 interface signaling
  • the first network element and the second network element are set in the same node.
  • the F1 interface signaling includes at least one of the following: a UE context text establishment request, and a UE context text modification request.
  • the frequency point information includes at least one of the following: a measurement frequency point list set, a synchronization signal block measurement time configuration information (SMTC) of each measurement frequency point, and a channel state information reference signal of each measurement frequency point.
  • SMTC synchronization signal block measurement time configuration information
  • CSI-RS related time domain configuration information whether each frequency point initiates an indication of SSB measurement, and whether each frequency point initiates an indication of CSI-RS measurement.
  • the method further includes: when the frequency information does not carry the SMTC configuration or the CSI-RS configuration corresponding to the measurement frequency point, the second network element obtains the SMTC of each measurement frequency point and the CSI-RS time domain configuration information of each measurement frequency point from the network management system.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the first network element calculates one or more sets of measurement interval mode configuration information according to physical resource configuration information on the one or more second network elements.
  • the first network element sends the measurement interval mode configuration information to the corresponding second network element.
  • the first network element corresponds to one or more second network elements, and the first network element and one or more second network elements are disposed at the same node.
  • the method further includes: acquiring, by the first network element, the physical resource configuration information by using one of the following manners: the first network element acquiring the physical resource by sending the request message to the second network element The configuration information is sent by the second network element to the first network element by means of active reporting.
  • the physical resource configuration information includes, but is not limited to, at least one of the following: a scheduling request SR, a sounding reference signal SRS, and a discontinuous receiving DRX.
  • the measurement interval mode configuration information includes, but is not limited to, at least one of the following: a measurement interval period, a measurement interval duration, a measurement interval offset value, and a measurement interval type.
  • the first network element sends the measurement interval mode configuration information to the corresponding second network element, where the first network element sends one or more sets of interval mode configuration information to each second network element at the same time;
  • the first network element is independently delivered according to the actual serving cell frequency point configuration on each second network element.
  • the first network element of the primary node sends one or more sets of measurement interval mode configuration information to the first network element of the secondary node; or the first network element of the secondary node It can be independently delivered according to the actual serving cell frequency point configuration on the second network element of the secondary node.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the second network element configures a measurement interval mode.
  • the second network element notifies the first network element of the measurement interval mode.
  • the first network element corresponds to one or more second network elements, and the first network element and the plurality of second network elements are disposed at the same node.
  • the method further includes: when the first network element adds a new second network element, the first network element establishes a message through the F1 interface.
  • the interval mode configuration is sent to the new second network element.
  • the method further includes: feeding back the new second network element to the first network element for characterization Describes whether the interval mode configuration is appropriate.
  • the first network element performs the interval mode configuration calculation again, or the source second network element reconfigures the interval mode.
  • the measurement interval mode includes at least one of the following: a measurement interval period, a measurement interval duration, a measurement interval offset value, and a measurement interval type.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the user equipment UE receives an air interface reconfiguration message.
  • the UE when the UE returns the RRC reconfiguration complete message, the UE notifies the network side measurement interval requirement by the cell in the radio resource control RRC response message of the master node.
  • the UE is connected to the primary node and the secondary node at the same time, and can be dual-connected in the NR system dual-connection or 4/5G system, the primary node is an eNB or a gNB, and the secondary node is a gNB or an eNB.
  • the air interface reconfiguration message is generated by the secondary node, and is sent to the UE by using an RRC message of the primary node in an encapsulated manner.
  • the RRC reconfiguration complete message is sent from the UE to the primary node, where the RRC reconfiguration complete message is carried in an encapsulated manner.
  • the cell in the RRC message includes one of the following forms: indicating whether the measurement interval needs to be configured; whether the serving cell indicating the frequency range FR1 needs the measurement interval, and whether the serving cell of the FR2 needs the interval; for the current serving cell Configuration, indicating whether the measurement interval is required for the frequency point of each serving cell.
  • the RRC message also carries the type of measurement interval mode desired by the UE.
  • the method further includes: receiving, by the UE, a new interval configuration sent by the network side, where the interval configuration is performed by the network side according to the received RRC.
  • the cells in the message are configured by interval.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the secondary node requests the primary node to perform measurement interval configuration update or measurement interval release by carrying an indication in the X2 or Xn interface message. Meanwhile, the secondary node receives the X2 or Xn interface message sent by the primary node, where the X2 or Xn interface message is sent.
  • the indication is used to notify the secondary node side to perform measurement interval configuration update, maintenance, or release; wherein the primary node and the secondary node that the UE simultaneously connect.
  • the indication comprises at least one of: by an explicit cell indication in the Xn message, by an explicit cell indication in an RRC inter-node message between the nodes carried in the X2 or Xn message.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the master node acquires indication information of the secondary node.
  • the master node determines, by using the indication information, an optional set of measurement interval modes.
  • the UE is connected to the primary node and the secondary node at the same time.
  • the content of the indication information includes at least one of the following: whether the secondary node configures the Long Term Evolution (LTE) inter-frequency frequency measurement, and whether the secondary node deletes the LTE inter-frequency measurement.
  • LTE Long Term Evolution
  • the indication manner of the indication information includes at least one of the following: the LTE measurement frequency point list configured by the secondary node is transmitted through the Xn interface message, and the information in the Xn interface message is used to indicate whether the secondary node is configured with the LTE inter-frequency frequency point measurement.
  • the LTE measurement frequency point list includes one of the following: adding or modifying a measurement frequency point list, and deleting the measurement frequency point list.
  • a method for configuring a measurement interval of the network architecture is provided.
  • another method for configuring a measurement interval is provided, including:
  • the primary node and the secondary node exchange the measurement interval configuration capability of the base station side through the X2 interface; or, in the new wireless new wireless NN-DC scenario, the primary node The secondary node interacts with the measurement interval configuration capability of the base station side through the Xn interface.
  • the interval configuration capability includes: whether the base station side supports a per-FR gap (wherein the FR (Frequency Range) is a frequency range).
  • the transmission mode of the measurement interval configuration capability includes one of: transmitting through a common signaling dedicated to the cell of the X2 or Xn interface; and transmitting the dedicated signaling dedicated to the UE by using the X2 or Xn interface.
  • the technical solution of the present disclosure which is essential or contributes to the related art, may be embodied in the form of a software product stored in a storage medium (such as ROM/RAM, disk, CD-ROM).
  • the instructions include a number of instructions for causing a terminal device (which may be a cell phone, a computer, a server, or a network device, etc.) to perform the methods described in various embodiments of the present disclosure.
  • a configuration device for measuring the interval is provided, and the device is used to implement the foregoing method embodiments and preferred embodiments, and details are not described herein.
  • the term “module” may implement a combination of software and/or hardware of a predetermined function.
  • the apparatus described in the following embodiments is preferably implemented in software, hardware, or a combination of software and hardware, is also possible and contemplated.
  • the base station is applied to a base station. As shown in FIG. 3, only the apparatus applied to the primary node side is also illustrated. The same applies to the secondary node.
  • the apparatus includes: The first network element and the second network element, wherein the first network element determines the frequency point information of the measurement target; the first network element notifies the frequency point information to the second network element by using the F1 interface signaling.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the base station, and includes: a first network element and one or more second network elements, wherein the first network element is configured according to one or more second network elements.
  • the physical resource configuration information is used to calculate one or more sets of interval mode configuration information; the first network element sends the interval mode configuration information to the corresponding second network element; wherein the first network element corresponds to one or more second networks yuan.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the base station, and includes: a first network element and one or more second network elements, wherein the second network element is configured with an interval mode; the second network element The interval mode is notified to the first network element.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the user equipment UE, and includes: a receiving module, configured to receive an air interface reconfiguration message; and a notification module, configured to reconfigure the information in the air interface to cause an interval requirement of the UE to occur.
  • a receiving module configured to receive an air interface reconfiguration message
  • a notification module configured to reconfigure the information in the air interface to cause an interval requirement of the UE to occur.
  • the cell in the radio resource control RRC message of the master node notifies the change of the network side interval requirement; wherein, the UE simultaneously connects the primary node and the secondary node, the primary The node is an eNB or a gNB, and the secondary node is a gNB or an eNB.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the secondary node, and includes: a requesting module, configured to request the primary node to perform interval configuration update or interval release by carrying an indication in the Xn interface message; or The node receives the Xn interface message sent by the master node, where the Xn interface message carries an indication for notifying the secondary node side to perform interval configuration update, maintenance or release; wherein the UE is connected to the primary node and the secondary node at the same time.
  • a requesting module configured to request the primary node to perform interval configuration update or interval release by carrying an indication in the Xn interface message
  • the node receives the Xn interface message sent by the master node, where the Xn interface message carries an indication for notifying the secondary node side to perform interval configuration update, maintenance or release; wherein the UE is connected to the primary node and the secondary node at the same time.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the primary node, and includes: an obtaining module, configured to obtain indication information of the secondary node; and a determining module, configured to determine, by using the indication information, an optional set of the interval mode;
  • the UE is connected to the primary node and the secondary node at the same time.
  • the embodiment further provides another configuration device for measuring the interval, which is applied to the primary node, and includes: a first interaction module, configured to pass the X2 with the secondary node in the new wireless EN-DC scenario of the evolved global terrestrial radio access network.
  • the interface exchanges the interval configuration capability of the base station side; or the second interaction module is configured to exchange the interval configuration capability of the base station side with the secondary node through the Xn interface in the new wireless new wireless NN-DC scenario.
  • each of the above modules may be implemented by software or hardware.
  • the foregoing may be implemented by, but not limited to, the foregoing modules are all located in the same processor; or, the above modules are in any combination.
  • the forms are located in different processors.
  • related configuration parameters and configuration procedures of the measurement interval are provided in a multi-connection scenario of the 5G CU-DU networking architecture.
  • the embodiment further includes multiple instances, and the configuration measurement interval process is described in different scenarios:
  • FR1 low frequency
  • FR2 high frequency
  • FR2 gap in the FR2 gap needs to be configured by the SN (such as the NR) side.
  • the SN such as the NR
  • FR2 gap configuration triggering scenarios on the SN (secondary node) side there are two types of FR2 gap configuration triggering scenarios on the SN (secondary node) side:
  • the MN (master node) side needs to configure the measurement of the FR2 frequency point, and the measurement needs the FR2 gap assistance.
  • the MN sends the FR2 frequency point (NR-ARFCN) list to the SN through the X2 port;
  • the SN side needs to be configured with the FR2 frequency point measurement, and the measurement needs the FR2 gap assistance. In this scenario, the SN side decides to configure the FR2 gap.
  • the DU When the FR2 gap configuration process is performed on the SN side, the DU will perform gap allocation according to the design of the current F1 interface.
  • the gNB-CU needs to inform the gNB-DU of the relevant measurement frequency information, so that the DU can calculate a reasonable interval configuration.
  • FIG. 4 is a flow chart of measuring the FR2 frequency point on the master node side of the embodiment, including:
  • the MN sends a SN Addition Request/SN Modification Request message to the SN, where the FR2 measurement frequency point list configured by the MN side is included.
  • the SgNB-CU After the SN receives the SN Modification Request message, the SgNB-CU sends the related FR2 measurement frequency information to the SgNB-DU through the UE Context Setup/Modification Request message, so that the DU performs the FR2 gap configuration.
  • the method includes one or more FR2 measurement frequency point list sets, SMTC configurations of each measurement frequency point, CSI-RS related time domain configuration information of each frequency point, an indication of whether each frequency point starts SSB measurement, and each frequency point. Whether to initiate an indication of CSI-RS measurement.
  • the SgNB-DU sends the calculation result of the FR2 gap configuration to the SgNB-CU through a UE Context Setup/Modification Response message.
  • the SgNB-CU sends the FR2 gap configuration to the UE by using the NR RRC reconfiguration message on the SN side, or the SgNB-CU sends the NR RRC message carrying the FR2 gap configuration to the UE through the MN side LTE RRC reconfiguration message.
  • the gNB-DU needs to obtain the SMTC configuration information and/or the CSI-RS related time domain configuration information of each measurement frequency point from the network management system.
  • FIG. 5 is a flowchart of measuring FR2 frequency point on the secondary node side of the embodiment, including:
  • the gNB-CU sends the relevant measurement frequency information to the SgNB-DU through the UE Context Setup/Modification Request message, so that the DU performs the gap configuration calculation.
  • the SgNB-DU sends the calculation result of the interval configuration to the SgNB-CU through a UE Context Setup/Modification Response message.
  • the gNB-DU needs to obtain the SMTC configuration information and/or the CSI-RS related time domain configuration information of each measurement frequency point from the network management system.
  • the gNB-CU acquires the physical resource configuration on each gNB-DU, and then combines the measurement target frequency point and the SMTC/CSI of each frequency point.
  • the configuration information of the RS is calculated, and the configuration of the measurement interval mode is calculated and sent to each DU through the F1 interface message.
  • FIG. 6 is a flowchart of configuring a physical resource on a DU by using a message request by a CU in this embodiment, including:
  • the CU sends a physical resource configuration request to the DU by using a UE Context Modification Request message.
  • the DU reports a physical resource configuration to the CU by using a UE Context Modification Response.
  • the CU calculates the measurement interval mode configuration according to the configuration information of the physical resources on each of the obtained DUs, and the configuration information of the SMTC and the CSI-RS, and sends the information to the respective DUs through the F1 interface message.
  • FIG. 7 is a flowchart of a physical resource configuration for actively reporting a DU by the present embodiment, including:
  • the DU actively reports a physical resource configuration request to the CU by using a UE Context Modification Required message.
  • the CU calculates the measurement interval mode configuration according to the configuration information of the physical resources on each of the obtained DUs, and the configuration information such as the SMTC and/or the CSI-RS, and the UE Context Modification Confirm message is sent. Give each DU.
  • FIG. 8 is a schematic diagram of the CU transmitting the gap configuration according to different interval types in the embodiment.
  • the network side only needs to configure one gap. During this gap, all serving cells cannot schedule the UE, and the UE will go during this time. Measure LTE/NR low frequency/NR high frequency.
  • the network side needs to configure two gaps, one called LTE/FR1 gap. During this gap, the LTE serving cell and the serving cell operating in the NR low frequency (FR1) cannot schedule the UE. The UE will be during this time. Inside to measure LTE frequency and NR low frequency. Another gap is called FR2 gap. During this gap, the NR high frequency (FR2) serving cell cannot schedule the UE, and the UE will measure the NR high frequency neighbor during this time.
  • the UE In a single DU, the UE has configured the measurement interval configuration.
  • the CU can notify the target new DU of the existing measurement interval configuration.
  • the new DU may feed back the indication to the CU or provide a recommended measurement interval configuration to the CU.
  • the measurement interval allocation is re-executed by the CU or the old DU.
  • FIG. 9 is a flowchart of a method for configuring an interval mode in an NR multi-connection architecture according to the embodiment, including:
  • the CU may notify the target DU (DU2) of the existing interval mode configuration information by using an F1 Setup Request message;
  • the DU2 may send the feedback indication or the recommended interval mode configuration to the CU through the F1 Setup Response message.
  • the RRC RRC reconfiguration message is sent to the UE by being carried in the NR RRC message, and the LTE replies by the UE.
  • the configuration completion message is sent to the primary node in the NR RRC reconfiguration complete message, where the NR RRC message cell carries the foregoing measurement interval requirement indication; after receiving the indication, the primary node further generates a measurement interval configuration, and configures the measurement interval. It is sent to the UE, and the measurement interval configuration is sent to the SN through the Xn interface.
  • FIG. 10 is a flowchart of a method for the UE to notify the network side of the change in the interval requirement in the embodiment, including:
  • the RRC RRC connection reconfiguration message is sent to the UE by being carried in the NR RRC message;
  • the LTE reconfiguration complete message that is sent by the UE is sent to the active node in the NR RRC reconfiguration complete message, where the interval requirement indication is carried.
  • the master node After receiving the indication, the master node further generates an interval configuration, and sends the interval configuration to the UE, and sends the interval configuration to the secondary node through the Xn interface.
  • FIG. 11 is a flowchart of configuring a secondary node request acquisition interval in this embodiment, and the process is as follows:
  • the secondary node side determines that the LTE inter-frequency measurement needs to be sent
  • the secondary node requests an interval mode configuration by using an SN Modification Required message.
  • S503 The master node performs interval configuration, and sends the interval configuration information to the secondary node side by using an SN Modification Confirm message.
  • FIG. 12 is a flowchart of the configuration of the secondary node request deletion interval in this embodiment. The flow is as follows:
  • the secondary node side needs to release the LTE inter-frequency measurement and does not need an interval configuration
  • the secondary node requests a release interval configuration by using an SN Modification Required message.
  • S513 The master node determines whether the interval measurement is performed on the local side, and if not, the interval configuration is deleted through the air interface reconfiguration command.
  • the master node informs the secondary node that the interval configuration has been released through the SN Modification Confirm message.
  • the LTE inter-frequency point measurement can be performed on both the primary node and the secondary node side. Therefore, the secondary node needs to inform the primary node whether to issue the LTE inter-frequency frequency measurement by means of the indication.
  • FIG. 13 is a flowchart of determining, by the master node, an optional interval mode set according to the indication, including:
  • the secondary node sends a SN Modification Required message to the primary node to notify the primary node, whether the secondary node determines whether to send or delete the LTE inter-frequency frequency measurement, which may be performed by using the display cell in the SN Modification Required signaling, or by using the SN Modification Required
  • the display cell in the RRC inter-node message carried in the signaling is indicated.
  • the master node determines, according to the obtained indication, an optional measurement interval mode set.
  • the primary node and the secondary node perform measurement interval configuration capability interaction through cell common signaling on the X2/Xn interface.
  • FIG. 14 is a flow chart of the interaction between the primary node and the secondary node in the interval configuration capability of the primary node and the secondary node according to the embodiment, including:
  • the master node acquires a capability support indication of the secondary node by using an X2/Xn Setup Request message.
  • the secondary node uses the X2/Xn Setup Response message to support whether the secondary node supports the per-FR gap (including the FR2 gap configuration and the per-FR scheduling support).
  • the primary node may configure a per-FR gap or a per-UE gap for the UE according to the situation decision.
  • the primary node and the secondary node perform interval configuration capability interaction through UE-specific signaling on the X2/Xn interface.
  • 15 is a flow chart of the interaction between the primary node and the secondary node in the interval configuration capability of the primary node and the secondary node according to the embodiment, including:
  • S711 The master node acquires a capability support indication of the secondary node by using a SgNB Addition Request message.
  • the secondary node informs the primary node whether the secondary node supports the per-FR gap (including the FR2 gap configuration and the per-FR scheduling support) by using the SgNB Addition Request Ack message.
  • the primary node may configure the per-FR gap or the per-UE gap for the UE according to whether the secondary node supports the per-FR gap decision.
  • Embodiments of the present disclosure also provide a storage medium having stored therein a computer program, wherein the computer program is configured to execute the steps of any one of the method embodiments described above.
  • the above storage medium may be configured to store a computer program for performing the following steps:
  • the first network element determines frequency point information of the measurement target.
  • the first network element notifies the frequency information to the second network element by using the F1 interface signaling.
  • the foregoing storage medium may include, but is not limited to, a USB flash drive, a Read-Only Memory (ROM), and a Random Access Memory (RAM).
  • ROM Read-Only Memory
  • RAM Random Access Memory
  • Embodiments of the present disclosure also provide an electronic device including a memory and a processor having a computer program stored therein, the processor being configured to execute a computer program to perform the steps of any one of the method embodiments described above.
  • the electronic device may further include a transmission device and an input and output device, wherein the transmission device is connected to the processor, and the input and output device is connected to the processor.
  • the foregoing processor may be configured to perform the following steps by using a computer program:
  • the first network element determines frequency point information of the measurement target.
  • the first network element notifies the frequency information to the second network element by using the F1 interface signaling.
  • modules or steps of the present disclosure described above can be implemented by a general-purpose computing device that can be centralized on a single computing device or distributed across a network of multiple computing devices. Alternatively, they may be implemented by program code executable by the computing device such that they may be stored in the storage device by the computing device and, in some cases, may be different from the order herein.
  • the steps shown or described are performed, or they are separately fabricated into individual integrated circuit modules, or a plurality of modules or steps thereof are fabricated as a single integrated circuit module. As such, the disclosure is not limited to any specific combination of hardware and software.

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Abstract

本公开提供了一种测量间隔的配置方法及装置、存储介质、电子装置,其中,该方法包括:第一网元确定测量目标的频点信息;第一网元将频点信息通过第一接口信令通知给第二网元;其中,第一网元和第二网元设置在同一节点。通过本公开,解决了相关技术中不能配置测量间隔的技术问题。

Description

测量间隔的配置方法及装置、存储介质、电子装置 技术领域
本公开涉及通信领域,具体而言,涉及一种测量间隔的配置方法及装置、存储介质、电子装置。
背景技术
相关技术中,5G网络架构具有革新性和组网的灵活性,在5G网络中无线接入网侧的基站被分离为集中式处理网元(Centralized Unit,简称为CU)和分布式处理网元(Distributed Unit,简称为DU)两个功能实体。通过集中式网元来控制多个分布式网元,可以实现云架构的基带集中处理和针对用户的远端分布式提供服务。在CU-DU分离的网络架构中,时延不敏感的网络功能放在集中处理网元CU中,时延敏感的网络功能放在分布式处理网元DU中,一方面节约了大量的核心网信令开销,另一方面也降低了切换的时延,可以增强NR系统的移动性能。CU与DU之间通过F1接口进行传输和连接。
在5G网络中也保留了LTE系统中的基站,从而形成跨系统双连接的网络架构。这样的组网方式可以提高无线资源利用率,降低系统切换时延,提高用户和系统性能。5G网络中的双连接方式包括:
主节点基站为eNB,辅节点基站为gNB,连接至LTE核心网EPC,即E-UTRAN,NR双连接(E-UTRAN,NR Dual Connectivity,简称EN-DC);
主节点基站为eNB,辅节点基站为gNB,连接至NR核心网5GC,即E-UTRAN,NR双连接(NG-RAN E-UTRA,NR Dual Connectivity,简称NGEN-DC);
主节点基站为gNB,辅节点基站为eNB,连接至NR核心网5GC,即NR,E-UTRAN双连接(NR,E-UTRAN Dual Connectivity,简称NE-DC);
主节点基站和辅节点基站均为gNB,即NR,NR双连接(NR,NR Dual Connectivity,简称NN-DC)。
在相关技术的LTE(Long Term Evolution,长期演进)系统中,若UE只有一个接收机,同一时刻只能在一个频点上接收信号。在进行异频异系统切换之前,首先要进行异频异系统测量。当异频或异系统测量被触发后,eNodeB将下发测量间隔相关配置,UE按照eNodeB的配置指示启动测量间隔。
然而在5G中,包含CU-DU组网架构的多连接场景下,有关测量间隔相关协调过程及详细的配置流程还没有确定,如间隔模式的相关参数的决策,主节点和辅节点之间有关间隔配置的交互流程,以及第一网元(gNB-CU)和第二网元(gNB-DU)之间有关间隔配置的交互流程。这样导致网元间无法有效配置合理的测量间隔。
针对相关技术中存在的上述问题,目前尚未发现有效的解决方案。
发明内容
本公开实施例提供了一种测量间隔的配置方法及装置、存储介质、电子装置。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:第一网元确定测量目标的频点信息;所述第一网元将所述频点信息通过第一接口信令通知给第二网元;其中,所述第一网元和所述第二网元设置在同一节点。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套测量间隔模式配置信息;所述第一网元将所述间隔模式配置信息发送给对应的第二网元;其中,所述第一网元对应一个或多个所述第二网元,所述第一网元和所述一个或多个第二网元设置在同一节点。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:第二网元配置间隔模式;所述第二网元将所述间隔模式通知给第一网元;第一网元可将配置的间隔模式通知给其它第二网元。其中,所述第一网元对应一个或多个所述第二网元,所述第一网元和多个所述第二网元设置在同一节点。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:用户设备UE接收空口重配消息;在所述空口重配信息导致所述UE的间隔需求发生变化的情况下,当所述UE回复RRC重配完成消息时,所述UE在主节点的无线资源控制RRC消息中的信元通知主节点网络侧测量间隔需求的变化;其中,所述UE同时连接主节点和辅节点,所述主节点为eNB或gNB,所述辅节点为gNB或eNB。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:辅节点通过在第二接口消息中携带指示,请求主节点进行间隔配置更新或间隔释放;同时,辅节点接收主节点发送的第二接口消息,其中,所述第二接口消息中携带用于通知辅节点侧进行间隔配置更新,维持或者释放的信息;其中,UE同时连接的所述主节点和所述辅节点。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:主节点获取辅节点的测量频点配置指示信息;所述主节点通过所述测量频点配置指示信息判断间隔模式的可选集合;其中,UE同时连接所述主节点和所述辅节点。
根据本公开的一个实施例,提供了一种测量间隔的配置方法,包括:在4/5G双连接场景下,主节点与辅节点通过第三或第二接口交互基站侧的测量间隔配置能力;或,在NN-DC场景下,主节点与辅节点通过第二接口交互基站侧的测量间隔配置能力。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在基站,包括:第一网元和第二网元,其中,所述第一网元确定测量目标的频点信息;所述第一网元将所述频点信息通过第一接口信令通知给所述第二网元。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在基站,包括:第一网元和一个或多个第二网元,其中,第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套间隔模式配置信息;所述第一网元将所述间隔模式配置信息发送给对应的第二网元;其中,所述第一网元对应所述一个或多个第二网元。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在基站,包括:第 一网元和一个或多个第二网元,其中,所述第二网元配置间隔模式;所述第二网元将所述间隔模式通知给所述第一网元。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在用户设备UE,包括:接收模块,设置为接收空口重配消息;通知模块,设置为在所述空口重配信息导致所述UE的间隔需求发生变化的情况下,当所述UE回复RRC重配完成消息时,在主节点的无线资源控制RRC消息中的信元通知网络侧间隔需求的变化;其中,其中,所述UE同时连接主节点和辅节点,所述主节点为eNB或gNB,所述辅节点为gNB或eNB。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在辅节点,包括:请求模块,设置为通过在第二接口消息中携带指示,请求主节点进行间隔配置更新或间隔释放;或,辅节点接收主节点发送的第二接口消息,其中,所述第二接口消息中携带用于通知辅节点侧进行间隔配置更新,维持或者释放的指示;其中,UE同时连接的所述主节点和所述辅节点。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在主节点,包括:获取模块,设置为获取辅节点的指示信息;判断模块,设置为通过所述指示信息判断间隔模式的可选集合;其中,UE同时连接所述主节点和所述辅节点。
根据本公开的另一个实施例,提供了一种测量间隔的配置装置,应用在主节点,包括:第一交互模块,设置为在演进全球陆地无线接入网新无线EN-DC场景下,与辅节点通过第三接口交互基站侧的间隔配置能力;或,第二交互模块,设置为在新无线新无线NN-DC场景下,与辅节点通过第二接口交互基站侧的间隔配置能力。
根据本公开的又一个实施例,还提供了一种存储介质,所述存储介质中存储有计算机程序,其中,所述计算机程序被设置为运行时执行上述任一项方法实施例中的步骤。
根据本公开的又一个实施例,还提供了一种电子装置,包括存储器和处理器,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行上述任一项方法实施例中的步骤。
通过本公开,明确了CU-DU组网架构下测量间隔的相关配置参数及配置流程。可以解决相关技术中不能配置测量间隔的技术问题。
附图说明
此处所说明的附图用来提供对本公开的进一步理解,构成本申请的一部分,本公开的示意性实施例及其说明用于解释本公开,并不构成对本公开的不当限定。在附图中:
图1是本公开实施例的网络构架图;
图2是根据本公开实施例的测量间隔的配置方法的流程图;
图3是根据本公开实施例的测量间隔的配置装置的结构框图;
图4是本实施例的主节点侧配置FR2频点测量流程图;
图5是本实施例的辅节点侧配置FR2频点测量流程图;
图6是本实施例的CU通过消息请求获得DU上的物理资源配置流程图;
图7是本实施例的DU主动上报物理资源配置流程图;
图8是本实施例的CU根据不同的间隔类型发送gap配置的示意图;
图9是本实施例的NR内多连接架构下间隔模式的配置方法流程图;
图10是本实施例的间隔需求发生变化,UE告知网络侧的方法流程图;
图11是本实施例的辅节点请求获取间隔配置流程图;
图12是本实施例的辅节点请求删除间隔配置流程图;
图13是本实施例的主节点根据指示判断可选的间隔模式集合流程图;
图14是本实施例的主节点和辅节点通过小区公共信令进行间隔配置能力交互流程图;
图15是本实施例的主节点和辅节点通过UE专属信令进行间隔配置能力交互流程图。
具体实施方式
下文中将参考附图并结合实施例来详细说明本公开。需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互组合。
需要说明的是,本公开的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
本申请实施例可以运行于图1所示的网络架构上,图1是本公开实施例的网络构架图,如图1所示,该网络架构包括:主节点、辅节点、UE,其中,主节点和辅节点可以理解为网络侧的基站(分别是主基站和辅基站),基站包括第一网元DU和第二网元CU,DU和CU采用分离构架。在本实施例中第一接口以F1接口,第二接口以Xn接口,第三接口以X2接口为例进行说明。
实施例1
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,图2是根据本公开实施例的测量间隔的配置方法的流程图,如图2所示,该流程包括如下步骤:
步骤S202,第一网元确定测量目标的频点信息;
步骤S204,第一网元将频点信息通过F1接口信令通知给第二网元;
其中,第一网元和第二网元设置在同一节点。
通过上述步骤,明确了CU-DU组网架构下测量间隔的相关配置参数及配置流程,可以解决相关技术中不能配置测量间隔的技术问题。
可选地,F1接口信令包括以下至少之一:UE上下文文本建立请求,UE上下文文本修改请求。
可选地,频点信息包括以下至少之一:测量频点列表集合,各个测量频点的同步信号块测量时间配置信息(SSB Measurement Timing Configuration,SMTC),各个测量频点的信道状态信息参考信号CSI-RS相关时域配置信息,各频点是否启动SSB测量的指示,及各频点是否启动CSI-RS测量的指示。
可选地,在第一网元将频点信息通过F1接口信令通知给第二网元之后,还包括:在频点信息未携带测量频点对应的SMTC配置或CSI-RS配置时,第二网元从网管系统获取各个 测量频点的SMTC和各个测量频点的CSI-RS时域配置信息。
实施例2
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例提供了另一种测量间隔的配置方法,包括:
S11,第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套测量间隔模式配置信息;
S12,第一网元将测量间隔模式配置信息发送给对应的第二网元;
其中,第一网元对应一个或多个第二网元,第一网元和一个或多个第二网元设置在同一节点。
可选地,在步骤S11之前,方法还包括:第一网元通过以下方式之一获取物理资源配置信息的包括:第一网元通过向第二网元发送请求消息的方式,来获取物理资源配置信息;第二网元通过主动上报的方式,将物理资源配置信息发送到第一网元。
可选地,物理资源配置信息包括但不限于以下至少之一:调度请求SR、探测参考信号SRS、不连续接收DRX。
可选地,测量间隔模式配置信息包括但不限于以下至少之一:测量间隔周期,测量间隔持续时长,测量间隔偏移值,测量间隔类型。
可选地,第一网元将测量间隔模式配置信息发送给对应的第二网元包括以下之一:第一网元将一套或多套间隔模式配置信息同时发送给各个第二网元;第一网元根据各个第二网元上实际的服务小区频点配置情况进行独立下发。
可选地,在存在多个第一网元的情况下,主节点第一网元将一套或多套测量间隔模式配置信息发给辅节点第一网元;或,辅节点第一网元可以根据辅节点第二网元上实际的服务小区频点配置情况进行独立下发。
实施例3
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例提供了另一种测量间隔的配置方法,包括:
S21,第二网元配置测量间隔模式;
S22,第二网元将测量间隔模式通知给第一网元;
其中,第一网元对应一个或多个第二网元,第一网元和多个第二网元设置在同一节点。
可选地,在第二网元将间隔模式通知给第一网元之后,还包括:在第一网元添加新的第二网元时,第一网元通过F1接口建立消息将已有的间隔模式配置发送给新的第二网元。
可选地,在第一网元通过F1接口建立消息将已配置的测量间隔模式配置发送给新的第二网元之后,还包括:新的第二网元向第一网元反馈用于表征测量间隔模式配置是否合适的描述信息。表征测量间隔模式配置不合适时,第一网元重新进行间隔模式配置计算,或者,源第二网元重新配置间隔模式。
可选地,测量间隔模式包括以下至少之一:测量间隔周期,测量间隔持续时长,测量间隔偏移值,测量间隔类型。
实施例4
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例提供了另一种测量间隔的配置方法,包括:
S31,用户设备UE接收空口重配消息;
S32,在空口重配信息导致UE的测量间隔需求发生变化的情况下,当UE回复RRC重配完成消息时,UE在主节点的无线资源控制RRC响应消息中的信元通知网络侧测量间隔需求的变化;其中,UE同时连接主节点和辅节点,可以在NR系统双连接或4/5G系统间双连接架构,主节点为eNB或gNB,辅节点为gNB或eNB。
可选地,空口重配消息是辅节点产生,并通过封装的方式通过主节点的RRC消息下发给UE。
可选地,RRC重配完成消息从UE发送到主节点,其中,RRC重配完成消息通过封装的方式进行携带。
可选地,RRC消息中的信元包括以下形式之一:指示是否需要配置测量间隔;分别指示频率范围FR1的服务小区是否需要测量间隔,以及FR2的服务小区是否需要间隔;针对当前的服务小区配置,指示每个服务小区所在频点是否需要测量间隔。
可选地,RRC消息还携带UE所期望的测量间隔模式类型。
可选地,在UE在外层的无线资源控制RRC响应消息中的信元通知网络侧之后,还包括:UE接收网络侧发送的新的间隔配置,其中,间隔配置是网络侧根据接收到的RRC消息中的信元进行间隔配置得到的。
实施例5
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例还提供了另一种测量间隔的配置方法,包括:
S41,辅节点通过在X2或Xn接口消息中携带指示,请求主节点进行测量间隔配置更新或测量间隔释放;同时,辅节点接收主节点发送的X2或Xn接口消息,其中,X2或Xn接口消息中携带用于通知辅节点侧进行测量间隔配置更新,维持或者释放的指示;其中,UE同时连接的主节点和辅节点。
可选地,指示包括以下至少之一:通过Xn消息中的显式信元指示,通过X2或Xn消息中携带的节点间的RRC消息(RRC inter-node message)中的显式信元指示。
实施例6
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例提供了另一种测量间隔的配置方法,包括:
S51,主节点获取辅节点的指示信息;
S52,主节点通过指示信息判断测量间隔模式的可选集合;
其中,UE同时连接主节点和辅节点。
可选地,指示信息的内容包括以下至少之一:辅节点是否配置了长期演进LTE异频频点测量,辅节点是否删除了LTE异频频点测量。
可选地,指示信息的指示方式包括以下至少之一:通过Xn接口消息传递辅节点配置的LTE测量频点列表,通过Xn接口消息中的信元指示辅节点是否配置了LTE异频频点测量。
可选地,LTE测量频点列表包括以下之一:新增或修改测量频点列表,删除测量频点列表。
实施例7
在本实施例中提供了一种运行于上述网络架构的测量间隔的配置方法,在本实施例提供了另一种测量间隔的配置方法,包括:
S61,在演进全球陆地无线接入网新无线EN-DC场景下,主节点与辅节点通过X2接口交互基站侧的测量间隔配置能力;或,在新无线新无线NN-DC场景下,主节点与辅节点通过Xn接口交互基站侧的测量间隔配置能力。
可选地,间隔配置能力包括:基站侧是否支持per-FR gap(其中FR(Frequency Range)为频率范围)。
可选地,测量间隔配置能力的传输方式包括以下之一:通过X2或Xn接口小区专属的公共信令进行传递;通过X2或Xn接口UE专属的专有信令进行传递。
通过以上的方法实施方式的描述,本领域的技术人员可以清楚地了解到根据上述实施例的方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本公开的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,或者网络设备等)执行本公开各个实施例所述的方法。
实施例8
在本实施例中还提供了一种测量间隔的配置装置,该装置用于实现上述方法实施例及优选实施方式,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件和/或硬件的组合。尽管以下实施例所描述的装置较佳地以软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
图3是根据本公开实施例的测量间隔的配置装置的结构框图,应用在基站,如图3所示,仅示意了应用在主节点侧的装置,在辅节点也同样适用,该装置包括:第一网元和第二网元,其中,第一网元确定测量目标的频点信息;第一网元将频点信息通过F1接口信令通知给第二网元。
本实施例还提供了另一种测量间隔的配置装置,应用在基站,包括:第一网元和一个或多个第二网元,其中,第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套间隔模式配置信息;第一网元将间隔模式配置信息发送给对应的第二网元;其中,第一网元对应一个或多个第二网元。
本实施例还提供了另一种测量间隔的配置装置,应用在基站,包括:第一网元和一个或多个第二网元,其中,第二网元配置间隔模式;第二网元将间隔模式通知给第一网元。
本实施例还提供了另一种测量间隔的配置装置,应用在用户设备UE,包括:接收模块, 用于接收空口重配消息;通知模块,用于在空口重配信息导致UE的间隔需求发生变化的情况下,当UE回复RRC重配完成消息时,在主节点的无线资源控制RRC消息中的信元通知网络侧间隔需求的变化;其中,其中,UE同时连接主节点和辅节点,主节点为eNB或gNB,辅节点为gNB或eNB。
本实施例还提供了另一种测量间隔的配置装置,应用在辅节点,包括:请求模块,用于通过在Xn接口消息中携带指示,请求主节点进行间隔配置更新或间隔释放;或,辅节点接收主节点发送的Xn接口消息,其中,Xn接口消息中携带用于通知辅节点侧进行间隔配置更新,维持或者释放的指示;其中,UE同时连接的主节点和辅节点。
本实施例还提供了另一种测量间隔的配置装置,应用在主节点,包括:获取模块,用于获取辅节点的指示信息;判断模块,用于通过指示信息判断间隔模式的可选集合;其中,UE同时连接主节点和辅节点。
本实施例还提供了另一种测量间隔的配置装置,应用在主节点,包括:第一交互模块,用于在演进全球陆地无线接入网新无线EN-DC场景下,与辅节点通过X2接口交互基站侧的间隔配置能力;或,第二交互模块,用于在新无线新无线NN-DC场景下,与辅节点通过Xn接口交互基站侧的间隔配置能力。
需要说明的是,上述各个模块是可以通过软件或硬件来实现的,对于后者,可以通过以下方式实现,但不限于此:上述模块均位于同一处理器中;或者,上述各个模块以任意组合的形式分别位于不同的处理器中。
实施例9
本实施例在5G的CU-DU组网架构的多连接场景下,提供了测量间隔的相关配置参数及配置流程。
本实施例还包括多个实例,在不同的场景下对配置测量间隔流程进行说明:
实例1:
在EN-DC场景下,仅per-FR gap(此处per-FR gap对应两种不同的形式,FR1 gap和FR2 gap,二者对应的频率范围不一样。FR1偏低频,FR2偏高频)中的FR2 gap需要由SN(如NR)侧进行配置,按照目前的gap coordination(间隔协调)框架,SN(辅节点)侧的FR2 gap配置触发场景有两种:
MN(主节点)侧需要配置FR2频点的测量,且该测量需要FR2 gap辅助,这种场景下,MN会将FR2频点(NR-ARFCN)列表通过X2口发送给SN;
SN侧需要配置FR2频点的测量,且该测量需要FR2 gap辅助,这种场景下,SN侧自行决定配置FR2 gap;
在SN侧进行FR2 gap配置过程时,按照当前F1接口的设计,DU会进行gap分配,gNB-CU需要将相关测量频点信息告知gNB-DU,便于DU计算合理的间隔配置。
所以,针对于上述两种不同的触发场景,分别有如下两种流程,图4是本实施例的主节点侧配置FR2频点测量流程图,包括:
S101,MN向SN发送SN Addition Request(添加请求)/SN Modification Request(修改 请求)消息,其中包括MN侧配置的FR2测量频点列表。
S102,在SN收到SN Modification Request消息之后,SgNB-CU会通过UE Context Setup(上下文设置)/Modification Request消息将相关的FR2测量频点信息告知SgNB-DU,以便DU进行FR2 gap配置。其中包括下述一项或多项FR2测量频点列表集合、各个测量频点的SMTC配置、各个频点的CSI-RS相关时域配置信息、各个频点是否启动SSB测量的指示、各个频点是否启动CSI-RS测量的指示。
S103,SgNB-DU将FR2 gap配置的计算结果通过UE Context Setup/Modification Response(修改响应)消息发送给SgNB-CU。
S104,SgNB-CU会通过SN侧的NR RRC重配消息将FR2 gap配置发送给UE,或SgNB-CU将NR RRC消息携带FR2 gap配置通过MN侧LTE RRC重配消息发送给UE。
其中,在S102中,若SN Modification Request消息中只携带测量频点列表集合,则gNB-DU需要从网管系统中获取各个测量频点的SMTC配置信息和/或CSI-RS相关时域配置信息。
图5是本实施例的辅节点侧配置FR2频点测量流程图,包括:
S111,gNB-CU会通过UE Context Setup/Modification Request消息将相关的测量频点信息告知SgNB-DU,以便DU进行gap配置计算。其中包括测量频点列表集合、各个测量频点的SMTC配置、各个频点的CSI-RS相关时域配置信息、各个频点是否启动SSB测量的指示、各个频点是否启动CSI-RS测量的指示。
S112,SgNB-DU将间隔配置的计算结果通过UE Context Setup/Modification Response消息发送给SgNB-CU。
其中,在S111中,若SN Modification Request消息中只携带测量频点列表集合,则gNB-DU需要从网管系统中获取各个测量频点的SMTC配置信息和/或CSI-RS相关时域配置信息。
实例2:
Intra-CU inter-DU场景,当基站侧下发的测量需要间隔辅助时,gNB-CU获取到各个gNB-DU上的物理资源配置,然后结合测量目标频点及各频点的SMTC/CSI-RS等配置信息,计算测量间隔模式配置,并通过F1接口消息下发给各个DU。
图6是本实施例的CU通过消息请求获得DU上的物理资源配置流程图,包括:
S201,CU通过UE Context Modification Request(上下文修改请求)消息向DU发送物理资源配置请求;
S202,DU通过UE Context Modification Response(上下文修改响应)向CU上报物理资源配置;
S203,CU根据获得的各个DU上的物理资源配置信息,结合测量目标频点及频点的SMTC和CSI-RS等配置信息,计算测量间隔模式配置,并通过F1接口消息下发给各个DU。
图7是本实施例的DU主动上报物理资源配置流程图,包括:
S211,DU通过UE Context Modification Required消息主动向CU上报物理资源配置请求;
S212,CU根据获得的各个DU上的物理资源配置信息,结合测量目标频点及频点的SMTC和/或CSI-RS等配置信息,计算测量间隔模式配置,并通过UE Context Modification Confirm消息下发给各个DU。
针对以上两种情况,若测量间隔类型为per-UE gap(场景1),则CU需要将同一套间隔配置发送给各个DU;若间隔类型为per-FR gap(场景2),如果DU1上仅有FR1的服务小区,DU2上仅有FR2的服务小区,则CU将FR1 gap发送给DU1,将FR2 gap发送给DU2。若测量间隔类型为per-FR gap(场景3),则CU同时将FR1 gap和FR2 gap发送给各个DU;图8是本实施例的CU根据不同的间隔类型发送gap配置的示意图。在本实施例的per-UE gap和per-FR gap,对于per-UE简单,网络侧只用配置一个gap,在这个gap期间,所有服务小区都不能调度UE,UE会在这段时间内去测量LTE/NR低频/NR高频。对于per-FR,网络侧需要配置两个gap,一个叫做LTE/FR1 gap,在这个gap期间,LTE服务小区和工作在NR低频(FR1)的服务小区都不能调度UE,UE会在这段时间内去测量LTE频点和NR低频。另一个gap叫FR2 gap,在这个gap期间,NR高频(FR2)服务小区不能调度UE,UE会在这段时间内去测量NR高频邻区。
实例3:
单DU下,UE已经配置了测量间隔配置,当添加了新DU成为Inter-DU DC时,若测量间隔能力未发生变化,CU可以将已有的测量间隔配置告知目标新DU;
目标新DU若无法适应该间隔模式配置,比如目标DU在该测量间隔模式配置下无可选其它物理资源配置,则新DU可以反馈指示给CU,或提供推荐的测量间隔配置给CU。由CU或旧的DU重新进行测量间隔分配。
图9是本实施例的NR内多连接架构下间隔模式的配置方法流程图,包括:
S301,在添加新的DU时,CU可以通过F1 Setup Request(设置请求)消息将已有的间隔模式配置信息告知目标DU(DU2);
S302,如果DU2无法使用该配置,则DU2可以通过F1 Setup Response消息将反馈指示或推荐的间隔模式配置发送给CU。
S303,收到DU2的反馈之后,CU会重新进行间隔模式配置,或通过F1接口信息通知DU1重新进行间隔模式配置。
实例4:
对于NE-DC场景下,辅节点(LTE)侧下发测量,或辅节点侧修改辅小区配置时,LTE的RRC重配消息通过携带在NR RRC消息内下发给UE,UE回复的LTE重配完成消息携带在NR RRC重配完成消息内发送至主节点,其中NR RRC消息信元中携带上述测量间隔需求指示;主节点收到该指示后,进一步生成测量间隔配置,并将测量间隔配置下发给UE,同时将测量间隔配置通过Xn接口发给SN。
图10是本实施例的间隔需求发生变化,UE告知网络侧的方法流程图,包括:
S401~S402,辅节点侧下发测量或修改辅节点配置时,LTE的RRC连接重配置消息会通过携带在NR RRC消息内下发给UE;
S403,UE回复的LTE重配完成消息携带在NR RRC重配完成消息内发送给主节点,其中携带间隔需求指示;
S404,主节点收到指示后,进一步生成间隔配置,并将间隔配置下发给UE,同时将间隔配置通过Xn接口发送给辅节点侧。
实例5:
场景1:在NE-DC场景下,图11是本实施例的辅节点请求获取间隔配置流程图,流程如下:
S501,辅节点侧确定需要下发LTE异频测量;
S502,辅节点通过SN Modification Required消息来请求间隔模式配置;
S503,主节点进行间隔配置,并通过SN Modification Confirm消息将间隔配置信息发送给辅节点侧。
场景2:在NE-DC场景下,图12是本实施例的辅节点请求删除间隔配置流程图,流程如下:
S511,辅节点侧需要释放LTE异频测量且不需要间隔配置;
S512,辅节点通过SN Modification Required消息来请求释放间隔配置;
S513,主节点进行判断本侧下发测量是否需要间隔配置,若不需要,则通过空口重配命令删除间隔配置。
S514,主节点通过SN Modification Confirm消息告知辅节点侧间隔配置已经释放。
实例6:
在NE-DC的架构下,对于主节点侧配置的per-UE gap或per-FR的FR1 gap,当前UE是否存在LTE异频频点的测量对象,会影响MN侧间隔模式的可选集合。在该场景下,主节点和辅节点侧均可以下发LTE异频频点测量。所以需要辅节点通过指示的方式,将自己是否下发LTE异频频点测量的情况告知给主节点。
图13是本实施例的主节点根据指示判断可选的间隔模式集合流程图,包括:
S601,辅节点向主节点发送SN Modification Required消息,通知主节点,辅节点测是否下发或删除LTE异频频点测量,具体可以通过SN Modification Required信令中的显示信元,或通过SN Modification Required信令中携带的RRC inter-node message中的显示信元进行指示。
S602,主节点根据得到的指示判断可选的测量间隔模式集合。
实例7:
在EN-DC或者NN-DC的场景下,主节点和辅节点通过X2/Xn接口上的小区公共信令进行测量间隔配置能力交互。
图14是本实施例的主节点和辅节点通过小区公共信令进行间隔配置能力交互流程图,包括:
S701,主节点通过X2/Xn Setup Request消息获取辅节点的能力支持指示;
S702,辅节点通过X2/Xn Setup Response消息将辅节点是否支持per-FR gap(包括FR2  gap配置,以及per-FR调度支持)。
S703,收到能力指示后,主节点可以根据情况决策为UE配置per-FR gap或per-UE gap。
在EN-DC或者NN-DC的场景下,主节点和辅节点通过X2/Xn接口上的UE专属信令进行间隔配置能力交互。
图15是本实施例的主节点和辅节点通过UE专属信令进行间隔配置能力交互流程图,包括:
S711,主节点通过SgNB Addition Request消息获取辅节点的能力支持指示;
S712,辅节点通过SgNB Addition Request Ack消息将辅节点是否支持per-FR gap(包括FR2 gap配置,以及per-FR调度支持)告知主节点。
S713,收到能力指示后,主节点可以根据辅节点是否支持per-FR gap决策为UE配置per-FR gap或per-UE gap。
实施例10
本公开的实施例还提供了一种存储介质,该存储介质中存储有计算机程序,其中,该计算机程序被设置为运行时执行上述任一项方法实施例中的步骤。
可选地,在本实施例中,上述存储介质可以被设置为存储用于执行以下步骤的计算机程序:
S1,第一网元确定测量目标的频点信息;
S2,第一网元将频点信息通过F1接口信令通知给第二网元。
可选地,在本实施例中,上述存储介质可以包括但不限于:U盘、只读存储器(Read-Only Memory,简称为ROM)、随机存取存储器(Random Access Memory,简称为RAM)、移动硬盘、磁碟或者光盘等各种可以存储计算机程序的介质。
本公开的实施例还提供了一种电子装置,包括存储器和处理器,该存储器中存储有计算机程序,该处理器被设置为运行计算机程序以执行上述任一项方法实施例中的步骤。
可选地,上述电子装置还可以包括传输设备以及输入输出设备,其中,该传输设备和上述处理器连接,该输入输出设备和上述处理器连接。
可选地,在本实施例中,上述处理器可以被设置为通过计算机程序执行以下步骤:
S1,第一网元确定测量目标的频点信息;
S2,第一网元将频点信息通过F1接口信令通知给第二网元。
可选地,本实施例中的具体示例可以参考上述实施例及可选实施方式中所描述的示例,本实施例在此不再赘述。
显然,本领域的技术人员应该明白,上述的本公开的各模块或各步骤可以用通用的计算装置来实现,它们可以集中在单个的计算装置上,或者分布在多个计算装置所组成的网络上,可选地,它们可以用计算装置可执行的程序代码来实现,从而,可以将它们存储在存储装置中由计算装置来执行,并且在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤,或者将它们分别制作成各个集成电路模块,或者将它们中的多个模块或步骤制作成单个集成电路模块来实现。这样,本公开不限制于任何特定的硬件和软件结合。
以上所述仅为本公开的优选实施例而已,并不用于限制本公开,对于本领域的技术人员来说,本公开可以有各种更改和变化。凡在本公开的原则之内,所作的任何修改、等同替换、改进等,均应包含在本公开的保护范围之内。

Claims (39)

  1. 一种测量间隔的配置方法,包括:
    第一网元确定测量目标的频点信息;
    所述第一网元将所述频点信息通过第一接口信令通知给第二网元;
    其中,所述第一网元和所述第二网元设置在同一节点。
  2. 根据权利要求1所述的方法,其中,所述第一接口信令包括以下至少之一:UE上下文文本建立请求,UE上下文文本修改请求。
  3. 根据权利要求1所述的方法,其中,所述频点信息包括以下至少之一:
    测量频点列表集合,各个测量频点的同步信号块测量时间配置信息SMTC,各个测量频点的信道状态信息参考信号CSI-RS相关时域配置信息。
  4. 根据权利要求3所述的方法,其中,在所述第一网元将所述频点信息通过第一接口信令通知给第二网元之后,所述方法还包括:
    在所述频点信息仅包括所述测量频点列表集合时,所述第二网元从网管系统获取所述各个测量频点的SMTC和所述各个测量频点的相关时域配置信息。
  5. 一种测量间隔的配置方法,包括:
    第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套间隔模式配置信息;
    所述第一网元将所述间隔模式配置信息发送给对应的第二网元;
    其中,所述第一网元对应一个或多个所述第二网元,所述第一网元和所述一个或多个第二网元设置在同一节点。
  6. 根据权利要求5的方法,其中,所述方法还包括:所述第一网元通过以下方式之一获取所述物理资源配置信息的包括:
    所述第一网元通过向所述第二网元发送请求消息的方式,来获取所述物理资源配置信息;
    所述第二网元通过主动上报的方式,将所述物理资源配置信息发送到所述第一网元。
  7. 根据权利要求5所述的方法,其中,所述物理资源配置信息包括以下至少之一:调度请求SR、探测参考信号SRS、不连续接收DRX。
  8. 根据权利要求5所述的方法,其中,所述间隔模式配置信息包括以下至少之一:间隔周期,间隔持续时长,间隔偏移值,间隔类型。
  9. 根据权利要求5所述的方法,其中,所述第一网元将所述间隔模式配置信息发送给对应的第二网元包括以下之一:
    所述第一网元将一套或多套所述间隔模式配置信息同时发送给各个所述第二网元;
    所述第一网元根据各个所述第二网元上实际的服务小区频点配置情况进行独立下发。
  10. 根据权利要求9的方法,其中,在存在多个所述第一网元的情况下,
    主节点第一网元将一套或多套间隔模式配置信息发给辅节点第一网元;或,辅节点第 一网元可以根据辅节点第二网元上实际的服务小区频点配置情况进行独立下发。
  11. 一种测量间隔的配置方法,包括:
    第二网元配置间隔模式;
    所述第二网元将所述间隔模式通知给第一网元;
    其中,所述第一网元对应一个或多个所述第二网元,所述第一网元和多个所述第二网元设置在同一节点。
  12. 根据权利要求11所述的方法,其中,在所述第二网元将所述间隔模式通知给第一网元之后,所述方法还包括:
    在所述第一网元添加新的第二网元时,所述第一网元通过第一接口建立消息将已有的间隔模式配置发送给所述新的第二网元。
  13. 根据权利要求12所述的方法,其中,在所述第一网元通过第一接口建立消息将已用的间隔模式配置发送给所述新的第二网元之后,所述方法还包括:
    所述新的第二网元向所述第二网元反馈用于表征所述间隔模式配置是否合适的描述信息。
  14. 根据权利要求13所述的方法,其中,在所述描述信息表征所述间隔模式配置不合适时,所述第一网元重新进行间隔模式配置计算,或者,所述第二网元重新配置间隔模式。
  15. 根据权利要求11所述的方法,其中,所述间隔模式包括以下至少之一:间隔周期,间隔持续时长,间隔偏移值,间隔类型。
  16. 一种测量间隔的配置方法,包括:
    用户设备UE接收空口重配消息;
    在所述空口重配信息导致所述UE的间隔需求发生变化的情况下,当所述UE回复RRC重配完成消息时,所述UE在主节点的无线资源控制RRC消息中的信元通知网络侧间隔需求的变化;
    其中,所述UE同时连接主节点和辅节点,所述主节点为eNB或gNB,所述辅节点为gNB或eNB。
  17. 根据权利要求16所述的方法,其中,所述空口重配消息是所述辅节点产生,并通过封装的方式通过所述主节点的RRC消息下发给所述UE。
  18. 根据权利要求16所述的方法,其中,所述RRC重配完成消息从所述UE发送到所述主节点,其中,所述RRC重配完成消息通过封装的方式进行携带。
  19. 根据权利要求16所述的方法,其中,所述RRC消息中的信元包括以下形式之一:
    指示是否需要配置间隔;
    分别指示频率范围FR1的服务小区是否需要间隔,以及FR2的服务小区是否需要间隔;
    针对当前的服务小区配置,指示每个频点是否需要间隔。
  20. 根据权利要求16所述的方法,其中,所述RRC消息还携带期望的间隔模式类型。
  21. 根据权利要求16所述的方法,其中,在所述UE在外层的无线资源控制RRC消息中的信元通知网络侧之后,所述方法还包括:
    所述UE接收所述网络侧发送的新的间隔配置,其中,所述间隔配置是所述网络侧根据接收到的所述RRC消息中的信元进行间隔配置得到的。
  22. 一种测量间隔的配置方法,包括:
    辅节点通过在第二接口消息中携带指示,请求主节点进行间隔配置更新或间隔释放;或,辅节点接收主节点发送的第二接口消息,其中,所述第二接口消息中携带用于通知辅节点侧进行间隔配置更新,维持或者释放的指示;
    其中,UE同时连接的所述主节点和所述辅节点。
  23. 根据权利要求22所述的方法,其中,所述指示包括以下至少之一:通过第二接口消息中的显式信元指示,通过第二接口消息中携带的节点间的RRC消息RRC inter-node message中的显式信元指示。
  24. 一种测量间隔的配置方法,包括:
    主节点获取辅节点的指示信息;
    所述主节点通过所述指示信息判断间隔模式的可选集合;
    其中,UE同时连接所述主节点和所述辅节点。
  25. 根据权利要求24所述的方法,其中,所述指示信息的内容包括以下至少之一:辅节点是否配置了LTE异频频点测量,辅节点是否删除了LTE异频频点测量。
  26. 根据权利要求24所述的方法,其中,所述指示信息的指示方式包括以下至少之一:通过第二接口消息传递辅节点配置的LTE测量频点列表,通过第二接口消息中的信元指示辅节点是否配置了LTE异频频点测量。
  27. 根据权利要求26所述的方法,其中,所述LTE测量频点列表包括以下之一:新增频点列表,删除频点列表。
  28. 一种测量间隔的配置方法,包括:
    在演进全球陆地无线接入网新无线EN-DC场景下,主节点与辅节点通过第三接口交互基站侧的间隔配置能力;或,在新无线新无线NN-DC场景下,主节点与辅节点通过第二接口交互基站侧的间隔配置能力。
  29. 根据权利要求28所述的方法,其中,所述间隔配置能力包括:基站侧是否支持per-FR gap。
  30. 根据权利要求28所述的方法,其中,所述间隔配置能力的传输方式包括以下之一:
    通过第三接口或第二接口小区专属的公共信令进行传递;
    通过第三接口或第二接口UE专属的专有信令进行传递。
  31. 一种测量间隔的配置装置,应用在基站,包括:第一网元和第二网元,其中,
    所述第一网元确定测量目标的频点信息;
    所述第一网元将所述频点信息通过第一接口信令通知给所述第二网元。
  32. 一种测量间隔的配置装置,应用在基站,包括:第一网元和一个或多个第二网元,其中,
    第一网元根据一个或多个第二网元上的物理资源配置信息计算出一套或多套间隔模式配置信息;
    所述第一网元将所述间隔模式配置信息发送给对应的第二网元;
    其中,所述第一网元对应所述一个或多个第二网元。
  33. 一种测量间隔的配置装置,应用在基站,包括:第一网元和一个或多个第二网元,其中,
    所述第二网元配置间隔模式;
    所述第二网元将所述间隔模式通知给所述第一网元。
  34. 一种测量间隔的配置装置,应用在用户设备UE,包括:
    接收模块,设置为接收空口重配消息;
    通知模块,设置为在所述空口重配信息导致所述UE的间隔需求发生变化的情况下,当所述UE回复RRC重配完成消息时,在主节点的无线资源控制RRC消息中的信元通知网络侧间隔需求的变化;
    其中,所述UE同时连接主节点和辅节点,所述主节点为eNB或gNB,所述辅节点为gNB或eNB。
  35. 一种测量间隔的配置装置,应用在辅节点,包括:
    请求模块,设置为通过在第二接口消息中携带指示,请求主节点进行间隔配置更新或间隔释放;或,辅节点接收主节点发送的第二接口消息,其中,所述第二接口消息中携带用于通知辅节点侧进行间隔配置更新,维持或者释放的指示;
    其中,UE同时连接的所述主节点和所述辅节点。
  36. 一种测量间隔的配置装置,应用在主节点,包括:
    获取模块,设置为获取辅节点的指示信息;
    判断模块,设置为通过所述指示信息判断间隔模式的可选集合;
    其中,UE同时连接所述主节点和所述辅节点。
  37. 一种测量间隔的配置装置,应用在主节点,包括:
    第一交互模块,设置为在演进全球陆地无线接入网新无线EN-DC场景下,与辅节点通过第三接口交互基站侧的间隔配置能力;或,第二交互模块,设置为在新无线新无线NN-DC场景下,与辅节点通过第二接口交互基站侧的间隔配置能力。
  38. 一种存储介质,其中,所述存储介质中存储有计算机程序,其中,所述计算机程序被设置为运行时执行所述权利要求1至30任一项中所述的方法。
  39. 一种电子装置,包括存储器和处理器,其中,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行所述权利要求1至30任一项中所述的方法。
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